US4229312A - Method of manufacturing a paint composite for magnetic films - Google Patents

Method of manufacturing a paint composite for magnetic films Download PDF

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Publication number
US4229312A
US4229312A US06/066,234 US6623479A US4229312A US 4229312 A US4229312 A US 4229312A US 6623479 A US6623479 A US 6623479A US 4229312 A US4229312 A US 4229312A
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United States
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weight
parts
manufacturing
paint composite
shear stress
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US06/066,234
Inventor
Waichi Nagashiro
Hajime Fukke
Yoshiki Kato
Teruo Tsunoda
Teruaki Kobayashi
Yoichi Oba
Katsuyoshi Chiba
Munehisa Mitsuya
Heigo Ishihara
Mitsushi Endo
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Hitachi Ltd
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Hitachi Ltd
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    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B5/00Recording by magnetisation or demagnetisation of a record carrier; Reproducing by magnetic means; Record carriers therefor
    • G11B5/62Record carriers characterised by the selection of the material
    • G11B5/68Record carriers characterised by the selection of the material comprising one or more layers of magnetisable material homogeneously mixed with a bonding agent
    • G11B5/70Record carriers characterised by the selection of the material comprising one or more layers of magnetisable material homogeneously mixed with a bonding agent on a base layer
    • G11B5/702Record carriers characterised by the selection of the material comprising one or more layers of magnetisable material homogeneously mixed with a bonding agent on a base layer characterised by the bonding agent
    • G11B5/7023Record carriers characterised by the selection of the material comprising one or more layers of magnetisable material homogeneously mixed with a bonding agent on a base layer characterised by the bonding agent containing polyesters, polyethers, silicones, polyvinyl resins, polyacrylresins or epoxy resins

Abstract

A method of manufacturing a paint composite for magnetic films wherein a mixture consisting of a magnetic powder, a polymer such as polyvinylbutyral, and a solvent is ground under a shear stress of 10-400 kg/cm2, and the ground mixture has a solvent, an epoxy resin and a phenol resin added thereto and is further ground. When a magnetic disk is produced using a paint which has been obtained by executing the first grinding under a shear stress of 10-400 kg/cm2 with a kneader or the like, it is endowed with excellent electric characteristics and surface flatness.

Description

BACKGROUND OF THE INVENTION
This invention relates to a method of manufacturing a paint composite for producing magnetic films of a magnetic disk, etc.
A magnetic disk has heretofore been produced by a method wherein a substrate is coated with a paint in which fine grains of a ferromagnetic substance are dispersed in a solution of a polymer binder, and the coating is subjected to further processes including curing, finishing, etc. Such a paint is disclosed in, for example, U.S. Pat. No. 3,198,657. In general, however, magnetic powder grains in a coating film flocculate at random and exist in the form of flocs having non-uniform sizes, so that a high recording density-disk is not fully satisfactory in electrical defects, surface roughness, etc.
By randomly dispersing the individual magnetic powder grains in the disk coating film, therefore, it is possible to obtain a magnetic disk which has electrical noise and defects lessened and which exhibits excellent electromagnetic characteristics and mechanical characteristics.
List of Prior Art (37 CFR 1.56(a))
The following reference is cited to show the state of the art:
U.S. Pat. No. 3,198,657
SUMMARY OF THE INVENTION
An objet of this invention is to provide a method of manufacturing a paint in which magnetic powder grains are dispersed individually and randomly.
Another object of this invention is to provide a method of manufacturing a paint which is excellent for producing a high recording density-disk.
These and other objects are accomplished by a method of manufacturing a paint composite for magnetic films which comprises a first step of milling a mixture under a shear stress of 10-400 kg/cm2, the mixture consisting essentially of:
magnetic powder (γ-Fe2 O3, Co-doped-γ-Fe2 O3, co-epitaxial-γ-Fe2 O3, CrO2, metal and metal alloy powder etc); 100 parts by weight
at least one polymer selected from the group consisting of polyvinylbutyral (hereinbelow, abbreviated to "PVB"), polyvinylformal (hereinbelow, abbreviated to "PVFM") and polyvinyl acetate (hereinbelow abbreviated to "PVAC"); 1.5-30 parts by weight ps and
solvents; 20-60 parts by weight
a second step of adding 40-290 parts by weight of a solvent to the mill base and milling it, and a third step of adding 10-70 parts by weight of an epoxy resin, 10-70 parts by weight of a phenol resin and 0-450 parts by weight of a solvent to the resultant mill base and milling it.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a diagram showing electric characteristics of magnetic disks; and
FIGS. 2A and 2B are diagrams showing the states of distributions of magnetic powder in the magnetic disks.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
This invention is characterized by manufacturing composite for magnetic films which consists essentially of:
magnetic powder; 100 parts by weight
at least one polymer selected from the group consisting of PVB, PVFM and PVAC; 1.5-30 parts by weight
epoxy resin; 10-70 parts by weight
phenol resin; 10-70 parts by weight
and
solvent; 300-800 parts by weight
and a paint composite for magnetic films which contains in addition to the above ingredients as may be needed:
filler; 0.1-15 parts by weight
and/or
polyurethane; 2-30 parts by weight.
In case of adding the filler, it is added in the first step of the manufacturing method. As the filler, all the known fillers for paints for magnetic films can be used. Especially, alumina is a favorable filler.
In case of adding the polyurethane, it is added in the third step of the method.
The grinding or milling in the first step is carried out with, for example, a kneader. Thus, a shear stress of 10-400 kg/cm2 is to be exerted on the mixture. A more preferable range of shear stresses is 20-300 kg/cm2. When the shear stress is less than 10 kg/cm2, it is difficult to grind the mixture, and when it is at least 10 kg/cm2 and is less than 20 kg/cm2, a long time is taken, though the grinding is possible. When the shear stress exceeds 300 kg/cm2, the resins tend to deteriorate due to mechanical effects, and when it exceeds 400 kg/cm2, the deterioration becomes conspicuous. Accordingly, the specified range is of importance.
The shear stress is determined by the gap between the blade and container of the kneader, the rotational frequency, etc. Therefore, when the shear stress is calculated in advance, it can be adjusted by controlling the rotational frequency. More specifically, the shear stress τ is expressed by the following equation:
τ=η×γ
where η denotes the viscosity of the solution, and γ the shear rate. Further, γ is expressed by the following equation: ##EQU1## where R denotes the radius of the blade of the kneader, r the rotational frequency (r.p.m.), and t the length of the gap between the blade and the container. Therefore, when the viscosities of the manufactured solutions have been measured in advance by a preliminary test, the mixture can be ground under a predetermined shear stress in the actual manufacture. The viscosity is measured by a rotational viscometer. As the mixture is ground, the viscosity etc. thereof vary, so that during the grinding the shear stress varies even when the rotational frequency is constant. If necessary, therefore, the rotational frequency is varied during the grinding so as to hold the shear stress within the specified range of values. By way of example, the mixture is ground for 30 minutes-24 hours while applying shear stresses of 10-400 kg/cm2 by revolving the blade at rotational frequencies of 5-50 r.p.m. Meantime, the temperature of the mill base varies between the room temperature and approximately 95° C. The shear stress τ is also expressed by the following equation: ##EQU2## where F denotes a force which the blade receives, and A the area of a grinding portion of the kneader. A predetermined shear stress can, therefore, be given by measuring the force F with a torque meter and adjusting the rotational frequency as may be needed.
Regarding the mixture for use in the first step, it is unnecessary to mix all the starting materials simultaneously. It is acceptable to add the solvent after the polymer and the magnetic powder have been mixed in advance. The polymer may well be added after having been dissolved in the solvent.
The polymers of PVB, PVFM and PVAC should preferably have molecular weights of at least 20,000 and at most 2,000,000.
The grinding or millings in the second and third steps are carried out with, for example, an ordinary ball mill.
Also in this case, the remaining binder and solvent may be mixed either once or little by little in succession. The resin may well be dissolved in the solvent and then mixed.
The "quantity zero" of the solvent in the third step signifies that, when the solvent has already been added by 300 parts by weight or more, it need not be specially added in the third step. More preferably, however, 1 part by weight--450 parts by weight of the solvent is/are added.
The solvents for use in the first step, second step and third step need not be identical. Of course, they may be solvents of the same kind. As described above, the magnetic powder is milled along with the polymer such as PVB by means of a grinder such as kneader establishing the shear stress of 10-400 kg/cm2, to cause the surfaces of the individual magnetic powder grains to adsorb the resin, whereupon the adjustments are made so as to obtain the final paint. The paint composite thus manufactured has a good stability of dispersion because the magnetic powder flocculates little owing to the effect (protective action) of the adsorbed polymer on the magnetic powder surfaces. Since the magnetic powder grains disperse individually and randomly, also magnetic powder grains in a coating film formed by a coating process disperse individually at random.
A magnetic disk can be produced from the magnetic paint composite obtained in this way, by a conventional method. That is, the magnetic disk is produced in such a way that, if necessary, the paint composite is further diluted with a solvent in order to establish a viscosity suitable for coating, that an aluminum substrate is coated with the paint composite, and that after executing alignment if necessary, the coating is cured and finished.
A disk manufactured by way of trial by the above method of production was much superior in various characteristics to a disk manufactured using a prior-art paint. FIG. 1 shows the measured results of electric characteristics of the disk of this invention (a) and the disk of the prior art (b). As seen from the figure, the disk of this invention (a) is enhanced approximately 5 dB in the S/N (signal-to-noise) ratio and approximately 5% in the resolving power over the prior-art disk (b). The reason is that since the individual magnetic powder grains in the coating film are distributed randomly and uniformly, the output is increased whereas noise is reduced. The states of distributions of the magnetic powder grains in the coating films were observed with an XMA (X-ray microanalyzer). The results are shown in FIGS. 2A and 2B, from which it is understood that the state of distribution in the disk of this invention in FIG. 2A is far more uniform than in the prior-art disk in FIG. 2B.
The roughness (Ra) of a coating surface in the disk of this invention is Ra =0.03-0.05. These values are much smaller and better than Ra =0.02-0.03 being the roughness of a finished surface in the prior-art disk. The disk of this invention can accordingly be used in the unfinished state, which leads to simplification of the process for producing the magnetic disk.
The following examples further illustrate the invention.
EXAMPLE 1
70 grams of powder of polyvinylbutyral and 700 grams of magnetic powder were thrown into a kneader in which the clearance between a blade and a container wall was 0.2 cm, and the powders were mixed for about 15 minutes. Subsequently, 250 grams of cyclohexanone was gradually added, and a grinding by the kneader was carried out under an initial shear stress of approximately 60 kg/cm2 based on a revolving speed of 30 r.p.m. for about four hours. Meantime, although the conditions of the kneader grinding were held constant, the shear stress rose to approximately 160 kg/cm2 and became a value of approximately 100 kg/cm2 finally because of variations in the viscosity etc. of the mixure. 480 grams of the resultant mill base was taken and put into a ball milling pot having a capacity of 3 liters, and 700 grams of cyclohesanone was further added thereto. A ball milling was carried out for seven days so as to disperse the magnetic powder. Thereafter, 120 grams of a phenol resin, 300 grams of a cyclohexanone solution containing 40% of an epoxy resin, 500 grams of isophorone, and 170 grams of dioxane were added to the dispersion, to prepare a paint for a magnetic disk. The paint was subsequently applied into a coating film thickness of 1.0-1.5 μm on an aluminum substrate whose surface had been cleaned in advance, and the coating film was cured at 220° C. for four hours. The roughness of the disk surface immediately after the cure was Ra =0.04 μm, which was much better than in a prior-art disk (Ra =0.10-0.15 μm). The surface of the disk was further lapped into a layer thickness of 1.0 μm and a roughness Ra =0.02 μm. The magnetic disk produced in this way was further immersed for five minutes in a freon solution containing 10% of perfluoroalkyl polyethers, whereupon it was pulled up in five minutes. The disk produced by the process thus far described had its electric characteristics measured. It was consequently found that, as compared with the prior-art disk, the disk of this invention was enhanced approximately 10% in noise and approximately 20% in the S/N (signal-to-noise) ratio. This was because the individual magnetic powder grains in the coating film dispersed randomly and uniformly.
When the surface of the coating film of the disk was observed with an SEM (scanning electron microscope), it was found that the packing density of the magnetic powder was enhanced and that protrusions in the surface were lessened.
EXAMPLES 2 to 6
In accordance with the same method described in Example 1, paint composites were manufactured by grinding mixtures of compositions listed in Table 1 under the same conditions as in Example 1 and then supplying the ground mixtures with a solvent in amounts listed in Table 2, followed by composites listed in Table 3. Also in this case, the shear stress in the first step was held in the range of 20-300 kg/cm2. Using the paints, magnetic disks were produced in the same way as in Example 1. All the disks exhibited substantially the same excellent effects as described previously. Alumina was added as a filler, and it is effective to increase the strengths of coating films. Numerical values in the tables signify "parts by weight".
              TABLE 1                                                     
______________________________________                                    
Example No.  2       3       4     5     6                                
______________________________________                                    
magnetic powder                                                           
             100     100     100   100   100                              
alumina      0.1     15      15    15    15                               
PVB          1.5     --      --    20    20                               
PVFM         --      30      --    --    --                               
PVAC         --      --      30    --    --                               
solvent      20      60      60    60    60                               
______________________________________                                    
              TABLE 2                                                     
______________________________________                                    
Example No.                                                               
          2       3       4     5     6                                   
______________________________________                                    
solvent    80     240     240   290   290                                 
______________________________________                                    
              TABLE 3                                                     
______________________________________                                    
Example No.  2       3       4     5     6                                
______________________________________                                    
epoxy resin  10      70      70    70    70                               
phenol resin 10      70      70    70    70                               
polyurethane resin                                                        
             --      --      --    --    30                               
solvent      200     500     500   450   450                              
______________________________________                                    

Claims (13)

What is claimed is:
1. A method of manufacturing a paint composite for magnetic films which comprises a first step of grinding a mixture under a shear stress of 10-400 kg/cm2, the mixture comprising 100 parts by weight of a magnetic powder, 1.5-30 parts by weight of at least one polymer selected from the group consisting of polyvinylbutyral polyvinylformal and polyvinyl acetate, and 20-60 parts by weight of a solvent for the polymer, a second step of adding 40-290 parts by weight of a solvent for the polymer to the ground mixture and then grinding the mixture, and a third step of adding 10-70 parts by weight of an epoxy resin, 10-70 parts by weight of a phenol resin and 0-450 parts by weight of a solvent for the polymer to the resultant mixture and further grinding the resultant mixture.
2. A method of manufacturing a paint composite for magnetic films as defined in claim 1, wherein said shear stress of 10-400 kg/cm2 is exerted by the use of a kneader.
3. A method of manufacturing a paint composite for magnetic film as defined in claim 1, wherein said shear stress has a value of 20-300 kg/cm2.
4. A method of manufacturing a paint composite for magnetic films as defined in claim 3, wherein said shear stress of 20-300 kg/cm2 is exerted by the use of a kneader.
5. A method of manufacturing a paint composite for magnetic films as defined in claim 1, wherein 2-30 parts by weight of polyurethane are further added in the grinding of said third step.
6. A method of manufacturing a paint composite for magnetic films as defined in any of claims 1, 2, 3, 4 or 5 wherein said polymer is polyvinylbutyral.
7. A method of manufacturing a paint composite for magnetic films which comprises a first step of grinding a mixture under a shear stress of 10-400 kg/cm2, the mixture consisting essentially of 100 parts by weight of a magnetic powder, 1.5-30 parts by weight of at least one polymer selected from the group consisting of polyvinylbutyral, polyvinylformal and polyvinyl acetate, 0.1-15 parts by weight of a filler, and 20-60 parts by weight of a solvent, the second step of adding 40-290 parts by weight of a solvent for said at least one polymer to the ground mixture and then grinding the resultant mixture, and a third step of adding 10-70 parts by weight of an epoxy resin, 10-70 parts by weight of a phenol resin and 0-450 parts by weight of a solvent for said polymer to the resultant mixture and further grinding the mixture.
8. A method of manufacturing a paint composite for magnetic films as defined in claim 7, wherein said shear stress of 10-400 kg/cm2 is exerted by the use of a kneader.
9. A method of manufacturing a paint composite for magnetic films as defined in claim 7, wherein said shear stress has a value of 20-300 kg/cm2.
10. A method of manufacturing a paint composite for magnetic films as defined in claim 9, wherein said shear stress of 20-300 kg/cm2 is exerted by the use of a kneader.
11. A method of manufacturing a paint composite for magnetic films as defined in claim 7, wherein 2-30 parts by weight of polyurethane are further added in the grinding of said third step.
12. A method of manufacturing a paint composite for magnetic films as defined in claim 7, wherein said polymer is polyvinylbutyral.
13. A method of manufacturing a paint composite for magnetic films as defined in any of claims 7, 8, 9, 10 or 11, wherein said filler is alumina.
US06/066,234 1978-08-11 1979-08-13 Method of manufacturing a paint composite for magnetic films Expired - Lifetime US4229312A (en)

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JP9721278A JPS5525406A (en) 1978-08-11 1978-08-11 Preparation of coating composition for magnetic recording disc
JP53-97212 1978-08-11

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Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4880666A (en) * 1983-12-27 1989-11-14 Kabushiki Kaisha Toshiba Method of manufacturing magnetic recording medium
US4946615A (en) * 1987-10-19 1990-08-07 Fuji Photo Film Co., Ltd. Method of preparing kneaded mixture for magnetic coating material
US5180616A (en) * 1986-06-23 1993-01-19 Hitachi, Ltd. Hard disk magnetic recording medium comprising magnetic powder and a binder and having a specified magnetic layer thickness and surface roughness
US5234614A (en) * 1990-06-14 1993-08-10 Matsushita Electric Industrial Co., Ltd. Method for producing magnetic coating composition and magnetic recording medium
US5655691A (en) * 1992-02-24 1997-08-12 Homax Products, Inc. Spray texturing device
US5934518A (en) * 1992-02-24 1999-08-10 Homax Products, Inc. Aerosol texture assembly and method
US8251255B1 (en) 2004-07-02 2012-08-28 Homax Products, Inc. Aerosol spray texture apparatus for a particulate containing material
US8336742B2 (en) 2004-10-08 2012-12-25 Homax Products, Inc. Aerosol systems and methods for dispensing texture material

Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3113859A1 (en) * 1980-04-07 1982-01-28 Fuji Photo Film Co., Ltd., Minami-Ashigara, Kanagawa MAGNETIC RECORDING MATERIAL
JPS5850626A (en) * 1981-09-18 1983-03-25 Hitachi Ltd Magnetic recording body for magnetic encoder
JPS58174945A (en) * 1982-04-07 1983-10-14 Asahi Chem Ind Co Ltd Support for photosensitive resin printing plate
JP2826228B2 (en) * 1992-04-20 1998-11-18 富士写真フイルム株式会社 Magnetic recording medium and method of manufacturing the same
JPH0632000U (en) * 1992-09-22 1994-04-26 近畿配管株式会社 Equipment for cutting and collecting synthetic resin waste

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3198657A (en) * 1964-09-17 1965-08-03 Ibm Process for spin coating objects
US3788996A (en) * 1970-05-21 1974-01-29 Du Pont Coating compositions containing polymeric dispersing aids
US3824128A (en) * 1969-10-07 1974-07-16 Fuji Photo Film Co Ltd Magnetic recording medium
US4038375A (en) * 1976-09-15 1977-07-26 Atlantic Richfield Company Process for the recovery of selenium from selenium-containing urethane solutions

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1804393A1 (en) * 1968-10-22 1970-05-27 Basf Ag Process for the production of magnetic recording media
US3655595A (en) * 1969-02-20 1972-04-11 Memorex Corp Epoxy binder for magnetic coating composition

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3198657A (en) * 1964-09-17 1965-08-03 Ibm Process for spin coating objects
US3824128A (en) * 1969-10-07 1974-07-16 Fuji Photo Film Co Ltd Magnetic recording medium
US3788996A (en) * 1970-05-21 1974-01-29 Du Pont Coating compositions containing polymeric dispersing aids
US4038375A (en) * 1976-09-15 1977-07-26 Atlantic Richfield Company Process for the recovery of selenium from selenium-containing urethane solutions

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4880666A (en) * 1983-12-27 1989-11-14 Kabushiki Kaisha Toshiba Method of manufacturing magnetic recording medium
US5180616A (en) * 1986-06-23 1993-01-19 Hitachi, Ltd. Hard disk magnetic recording medium comprising magnetic powder and a binder and having a specified magnetic layer thickness and surface roughness
US4946615A (en) * 1987-10-19 1990-08-07 Fuji Photo Film Co., Ltd. Method of preparing kneaded mixture for magnetic coating material
US5234614A (en) * 1990-06-14 1993-08-10 Matsushita Electric Industrial Co., Ltd. Method for producing magnetic coating composition and magnetic recording medium
US5655691A (en) * 1992-02-24 1997-08-12 Homax Products, Inc. Spray texturing device
US5934518A (en) * 1992-02-24 1999-08-10 Homax Products, Inc. Aerosol texture assembly and method
US8251255B1 (en) 2004-07-02 2012-08-28 Homax Products, Inc. Aerosol spray texture apparatus for a particulate containing material
US8336742B2 (en) 2004-10-08 2012-12-25 Homax Products, Inc. Aerosol systems and methods for dispensing texture material

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DE2932618B2 (en) 1981-06-19
DE2932618C3 (en) 1982-02-11
DE2932618A1 (en) 1980-02-14
JPS5744712B2 (en) 1982-09-22
JPS5525406A (en) 1980-02-23

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